EP3752464A1 - Method and apparatus for electrochemical ph control - Google Patents
Method and apparatus for electrochemical ph controlInfo
- Publication number
- EP3752464A1 EP3752464A1 EP19755109.6A EP19755109A EP3752464A1 EP 3752464 A1 EP3752464 A1 EP 3752464A1 EP 19755109 A EP19755109 A EP 19755109A EP 3752464 A1 EP3752464 A1 EP 3752464A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- electrode
- surface area
- solution
- electrodes
- electrochemical
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/46—Treatment of water, waste water, or sewage by electrochemical methods
- C02F1/461—Treatment of water, waste water, or sewage by electrochemical methods by electrolysis
- C02F1/467—Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction
- C02F1/4672—Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction by electrooxydation
- C02F1/4674—Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction by electrooxydation with halogen or compound of halogens, e.g. chlorine, bromine
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01N—PRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
- A01N59/00—Biocides, pest repellants or attractants, or plant growth regulators containing elements or inorganic compounds
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/46—Treatment of water, waste water, or sewage by electrochemical methods
- C02F1/461—Treatment of water, waste water, or sewage by electrochemical methods by electrolysis
- C02F1/46104—Devices therefor; Their operating or servicing
- C02F1/46109—Electrodes
-
- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B1/00—Electrolytic production of inorganic compounds or non-metals
- C25B1/01—Products
- C25B1/24—Halogens or compounds thereof
- C25B1/26—Chlorine; Compounds thereof
-
- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B11/00—Electrodes; Manufacture thereof not otherwise provided for
- C25B11/02—Electrodes; Manufacture thereof not otherwise provided for characterised by shape or form
-
- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B15/00—Operating or servicing cells
- C25B15/02—Process control or regulation
-
- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B15/00—Operating or servicing cells
- C25B15/02—Process control or regulation
- C25B15/023—Measuring, analysing or testing during electrolytic production
- C25B15/025—Measuring, analysing or testing during electrolytic production of electrolyte parameters
- C25B15/029—Concentration
- C25B15/031—Concentration pH
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B9/00—Cells or assemblies of cells; Constructional parts of cells; Assemblies of constructional parts, e.g. electrode-diaphragm assemblies; Process-related cell features
- C25B9/17—Cells comprising dimensionally-stable non-movable electrodes; Assemblies of constructional parts thereof
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/66—Treatment of water, waste water, or sewage by neutralisation; pH adjustment
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/46—Treatment of water, waste water, or sewage by electrochemical methods
- C02F1/461—Treatment of water, waste water, or sewage by electrochemical methods by electrolysis
- C02F1/46104—Devices therefor; Their operating or servicing
- C02F1/46109—Electrodes
- C02F2001/46152—Electrodes characterised by the shape or form
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/46—Treatment of water, waste water, or sewage by electrochemical methods
- C02F1/461—Treatment of water, waste water, or sewage by electrochemical methods by electrolysis
- C02F1/46104—Devices therefor; Their operating or servicing
- C02F1/46109—Electrodes
- C02F2001/46152—Electrodes characterised by the shape or form
- C02F2001/46157—Perforated or foraminous electrodes
- C02F2001/46161—Porous electrodes
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2101/00—Nature of the contaminant
- C02F2101/30—Organic compounds
- C02F2101/306—Pesticides
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2201/00—Apparatus for treatment of water, waste water or sewage
- C02F2201/46—Apparatus for electrochemical processes
- C02F2201/461—Electrolysis apparatus
- C02F2201/46105—Details relating to the electrolytic devices
- C02F2201/4612—Controlling or monitoring
- C02F2201/46125—Electrical variables
- C02F2201/4613—Inversing polarity
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2209/00—Controlling or monitoring parameters in water treatment
- C02F2209/06—Controlling or monitoring parameters in water treatment pH
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2301/00—General aspects of water treatment
- C02F2301/08—Multistage treatments, e.g. repetition of the same process step under different conditions
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2303/00—Specific treatment goals
- C02F2303/04—Disinfection
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2303/00—Specific treatment goals
- C02F2303/22—Eliminating or preventing deposits, scale removal, scale prevention
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2307/00—Location of water treatment or water treatment device
- C02F2307/02—Location of water treatment or water treatment device as part of a bottle
Definitions
- the present invention relates to the production of electrolyzed aqueous solutions in an electrochemical cell. More particularly, the invention relates to an asymmetric electrochemical cell device for producing electrolyzed water or aqueous solution, while controlling the pH of the solution. The invention further relates to methods of operating the device of the invention and to the use thereof for microbial disinfection and/or pesticide removal.
- FIG. 1 is a schematic illustration of an electrochemical cell 100 for producing electrolyzed water, according to the prior art.
- the electrochemical cell typically contains two compartments within a cell housing 101, namely a positive compartment 102 in which a positive electrode (anode) 105 is located, and a negative compartment 103 in which a negative electrode (cathode) 106 is present.
- the two compartments are separated by an ion-exchange membrane 104.
- an acidic water discharge 109 is typically obtained from the positive compartment 102 of the electrochemical cell 100, having a pH value within a range of 2-6.
- the membrane 104 allows the transfer of cations (such as Na + ), which traverses the membrane 104 and enters the negative compartment 103 of the electrochemical cell 100.
- hydroxide (OH ) is liberated, and hydrogen is evolved.
- an alkaline water discharge 110 which may contain NQOH m , is typically obtained from the negative compartment 103 of the electrochemical cell 100, having a pH value of 8-13.
- Electrodes which are typically expensive (e.g., based on titanium alloys and pure graphite) and may be largely inert in the harsh electrolytic conditions.
- HOX hypohalous acid
- a device for generating an aqueous solution having a desired pH using an asymmetric electrochemical cell comprising:
- pH is the desired pH of the aqueous solution
- V is the volume of the aqueous solution disposed within the device
- [A ] is the nominal surface area of the negative electrode
- [A + ] is the nominal surface area of the positive electrode
- n 1 when the negative electrode is the higher surface area electrode, or n is -1 when the positive electrode is the higher surface area electrode
- e is the permittivity constant
- d is the distance between the surface adsorbed ions and the opposite charged electrode in an electrical double layer
- C sd is the total self-discharge capacity of the high surface area electrode; f is a normalizing factor; and
- E is the overall electric potential of the electrochemical cell.
- the normalizing factor is obtained by determining a theoretical surface area of a first electrode using the resulting pH from a plurality of experiments, determining the ratio between the theoretical surface area and an experimental surface area of said electrode for each pH obtained from a separate experiment, and averaging the ratios between the theoretical surface area and the experimental surface area of said electrode for each of said resulting pHs, to obtain the normalizing factor for a specific combination of electrodes.
- the high surface area electrode of the device is surface- treated, such that it is continuously self-discharged.
- the high surface area electrode is grounded.
- the high surface area electrode comprises oxide functional groups.
- the device is a sprayer device. In another embodiment of the invention the device is a towelette.
- Also encompassed by the invention is a method of operating an asymmetric electrochemical cell device, comprising the steps of:
- V is the volume of the aqueous solution disposed within the device
- [A ] is the nominal surface area of the negative electrode
- [A + ] is the nominal surface area of the positive electrode
- n 1 when the negative electrode is the higher surface area electrode, or n is -1 when the positive electrode is the higher surface area electrode
- e is the permittivity constant
- d is the distance between the surface adsorbed ions and the opposite charged electrode in an electrical double layer
- C sd is the total self-discharge capacity of the high surface area electrode; f is a normalizing factor; and
- E is the overall electric potential of the electrochemical cell. (b) determining a magnitude and time of an electrical current to be applied between the positive and negative electrodes by the equation:
- V is the volume of the aqueous solution disposed within the device
- I is the electric current applied between the electrodes.
- dt is the time interval for applying said electric current
- step (d) applying the electric current determined in step (b) between the electrodes, until the desired pH of the resulting solution is obtained.
- the total self-discharge capacity of the high surface area electrode is different than 0 (zero) and the high surface area electrode is surface-treated such that it is continuously self-discharged.
- the concentration of the salt needed for obtaining a concentration C H oci of the hypochlorous acid is determined according to:
- C NaCi is the required salt concentration in the solution disposed within the device, in
- pH is the desired pH of the solution; a is 1 when pH ⁇ 7, or a is -1 when pH>7;
- V is the volume of the solution disposed within the device
- C H oci is the desired concentration of the active material needed for a given application.
- t is the operating time of the device.
- a method for controlling the pH of a solution containing a chloride derivative comprising applying a current to a device for generating an aqueous solution having a desired pH as described above until the desired pH is obtained.
- Fig. 1 is a schematic illustration of a two-compartment electrochemical cell having an ion-exchange membrane for producing electrolyzed water, according to the prior art
- Fig. 2 is a schematic illustration of a single-compartment electrochemical cell for producing alkaline electrolyzed water
- Fig. 3 is a schematic illustration of a single-compartment asymmetric electrochemical cell for producing acidic electrolyzed water, according to an embodiment of the present invention
- Fig. 4 is an equilibrium plot of available chlorine present as hypochlorous acid (% HOCI), as a function of pH;
- Fig. 5 is a schematic illustration of a single-compartment asymmetric electrochemical cell for producing alkaline electrolyzed water, according to an embodiment of the present invention
- Fig. 6A provides a schematic side view of an electric sprayer operating according to the invention, having at least one high surface area electrode and having at least one low surface area electrode;
- Fig. 6B provides a cross-section of the body of the electric sprayer of Fig. 6A;
- Fig. 6C provides a schematic representation of an electrical diagram of an electrochemical device according to the invention, such as may be the electric sprayer of Fig. 6A;
- Fig. 7 is a schematic representation of an electrochemical towelette, according to an embodiment of the present invention;
- Fig. 8A provides a schematic, transparent top view of an electrochemical container, according to an embodiment of the present invention.
- Fig. 8B provides a schematic, transparent side view of the electrochemical container of Fig. 8A.
- Fig. 9A is a self-discharge plot, showing the decline of the potential (E, in volts) over time (T, in seconds), that was obtained by an activated carbon cloth electrode from Kynol type ACC-5092- 15, versus a saturated calomel electrode (SCE) as a reference electrode.
- Fig. 9B is the self-discharge plot of the Fig. 9A presenting the time scale as a logarithmic scale.
- Fig. 10 is a plot of hypochlorous anion (OCT) concentration in ppm as a function of the charge/discharge cycle number (#) under constant current, applied to an electrochemical towelette according to the invention, after wetting with tap water; in the Fig., (+) indicates that the low surface area electrode is positively charged, and (-) indicates that the low surface area electrode is negatively charged;
- Fig. 11 is a plot of acidic pH development in a towelette such as that of Fig. 7 (low surface carbon side) as a function of time (charge/discharge cycle number, #);
- Fig. 12 is a plot of the pH development in the towelette of Fig. 7, as a function of total charge consumption (in milliampere hour units, mAh), according to an embodiment of the present invention
- Fig. 13 is a plot of the pH development in the towelette of Fig. 7 (low surface area side) as a function of time (T, in seconds), according to another embodiment of the present invention; in the Fig., EC indicates end of charging;
- Fig. 14 is a plot of potential (in Volts, V) vs. time (T, in seconds) for an electrochemical towelette such as described with reference to Fig. 7, according to still another embodiment of the present invention
- Fig. 15 is a plot of the pH development in the towelette of Fig. 7 (high surface area side) as a function of time (T, in seconds), according to yet another embodiment of the present invention
- Fig. 16 is a plot of the pH development in the towelette of Fig. 7 (low surface area side) as a function of time (T, in seconds), according to a further embodiment of the present invention
- Fig. 17A is a photograph of Escherichia coli colonies in Petri dishes, following treatment in the central area of the dishes, using a non-polarized (NP) electrochemical towelette and polarized (P) electrochemical towelette, such as described with reference to Fig. 7, for 24 hours;
- NP non-polarized
- P polarized
- Fig. 17B is a photographs of Staphylococcus aureus colonies in Petri dishes, following treatment in the central area of the dishes, using a non-polarized (NP) electrochemical towelette and polarized (P) electrochemical towelette, such as described with reference to Fig. 7, for 24 hours;
- NP non-polarized
- P polarized
- the asymmetric electrochemical cell device addresses the need for an improved electrochemical device, which does not require an ion-exchange membrane and reduces the expenses necessary to produce the device, by using relatively inexpensive materials.
- the device according to the invention can maintain its functionality over time, by operating the device under conditions which prevent overusing the electrodes.
- the salt solution exemplified throughout this description is a pure NaCI solution in water.
- other chemical entities e.g., other salt traces
- additional electrochemical reactions not shown in these simplified examples will take place, which are well understood to the skilled person and, therefore, are not discussed herein in detail for the sake of brevity.
- Fig. 2 provides a schematic illustration of a single-compartment electrochemical cell 200 for producing an alkaline water discharge 206.
- the single-compartment electrochemical cell 200 contains a cell housing 201 to which salt water (aqueous NaCI) feed 205 is introduced.
- salt water aqueous NaCI
- positive electrode (anode) 202 and negative electrode (cathode) 203 are electrically connected to a suitable power supply 204, the faradaic reactions which take place over the electrodes ultimately result in an alkaline solution containing an alkali hypohallte (e.g., sodium hypochlorite) and having a pH value of about 8-10.
- an alkali hypohallte e.g., sodium hypochlorite
- the present invention provides a device for generating a charged liquid, using an asymmetric electrochemical cell, having a structure similar to the electrochemical cell 100 of Fig. 1, and comprising a single-compartment cell housing (/.e., without and ion-exchange membrane), a power supply, at least one positive electrode and at least one negative electrode within the cell housing, wherein the surface area of one of the electrodes is higher than the surface are of the opposite charged electrode by a differential determined according to an appropriate equation selected from Equations 1, 5 and 6, as described hereinbelow.
- the positive and/or negative electrode may physically comprise more than one electrode.
- surface area of an electrode as used herein refers to the sum of surface areas of all the electrodes which make the positive or negative electrode.
- the asymmetric electrochemical cell device of the invention may advantageously be used to produce electrolyzed water at a desired pH.
- control over the pH of the solution within the device can be achieved by using an asymmetric electrochemical cell so that, as hereinafter discussed, only one of the electrodes (/.e., the low surface area electrode) engages in chemical reactions involving faradaic charge transfer, namely, the low surface area electrode works in a "faradaic mode".
- the high surface area electrode is mainly acts as a capacitor to accumulate the electrical charge and adsorb opposite-charged ions in the electrolyte solution in its vicinity.
- the high surface area electrode works in a "capacitive mode” or "non-faradaic mode”.
- the term "semi-capacitive electrochemical mode of operation" as used herein refers to applying a current between one electrode working in a faradaic mode and a second electrode working in a capacitive mode.
- the positive electrode In order to achieve electrolyzed water having an acidic pH according to the present invention, the positive electrode should be the low surface area electrode while the negative electrode should be the high surface area electrode. In this mode of operation, hydrogen ions (H + ) would be liberated from water being electrolyzed at the positive electrode, with little or no formation of hydroxide ions (OH ) at the negative electrode.
- the negative electrode in order to achieve electrolyzed water having an alkaline pH according to the present invention, the negative electrode should be the low surface area electrode while the positive electrode should be the high surface area electrode. In this scenario, hydroxide ions (OH ) would be liberated from water being electrolyzed at the negative electrode, with little or no formation of hydrogen ions (H + ) at the positive electrode.
- the differential between the surface areas of the positive and negative electrodes should be sufficient as to enable the high surface area electrode to keep accumulating the electrical charge until the desired pH of the solution is achieved by the faradaic reactions occurring at the opposite electrode.
- the volume of the aqueous solution disposed within the electrochemical cell disposed within the electrochemical cell; and the electrochemical capacitance differential (D ec ) between the negative and positive electrodes, namely, the differential between nominal surface areas of the positive and negative electrodes.
- V is the volume of the aqueous solution disposed within the device
- [A ] is the nominal surface area of the negative electrode
- [A + ] is the nominal surface area of the positive electrode
- e is the permittivity constant
- d is the distance between the surface adsorbed ions and the electrode opposite charge in an electrical double layer
- C sd is the total self-discharge capacity of the high surface area electrode
- f is a normalizing factor
- E is the overall electric potential of the electrochemical cell.
- the C sd is dependent on the specific material used for the high surface area electrode. Accordingly, the value of C sd should be determined for the specific electrode material used as the high surface area electrode in the device. Determining the value of C sd can be carried out using any routine method for measuring the self-discharge capacity of an electrode.
- the self-discharge of the electrolytic capacitor occurs via a passage of faradaic currents that can oxidize or reduce moieties in the electrolyte solution or in the electrode itself.
- the potential decline with time is expected to follow a certain behavior, according to the reaction rate.
- the self-discharge potential-time derivative is expected to obey equation 2:
- C is the double-layer capacitance
- dE/dt is the potential-time derivative
- equation 2 can be written as:
- C is the double-layer capacitance
- dE/dt is the potential-time derivative
- R is the universal gas constant
- T is the cell temperature
- a is the transfer coefficient
- F is the Faraday constant.
- C sd is the self-discharge capacitance
- C is the double-layer capacitance
- dE/dt is the potential-time derivative
- t is the self-discharge time
- t f is the specific time that can be used to calculate the self-discharge capacitance for specific differential time and potential.
- Equation 1 includes a normalizing factor (f), which takes said deviations into consideration.
- the normalizing factor is the average ratio between a theoretical surface area and an experimental surface area of a specific electrode.
- the normalizing factor is unique for a specific combination of high surface area and low surface area electrodes. The normalizing factor is obtained by the following steps:
- the first electrode may be the negative or the positive electrode
- the second electrode may be the positive or the negative electrode, respectively.
- the first electrode may be the high surface electrode or the low surface area electrode in the device of the invention, while the second electrode is the low surface area or the high surface area electrode, respectively.
- the normalizing factor for a desired combination of electrodes to be used in an asymmetrical electrochemical cell device of the invention could be drawn from a known database of normalizing factors determined for various combinations of electrodes.
- V is the volume of the aqueous solution disposed within the device
- [A + ] is the nominal surface area of the positive electrode
- [A ] is the nominal surface area of the negative electrode
- e is the permittivity constant
- d is the distance between the surface adsorbed ions and the electrode opposite charge in an electrical double layer
- C sd is the total self-discharge capacity of the high surface area electrode
- f is a normalizing factor
- E is the overall electric potential of the electrochemical cell.
- V is the volume of the aqueous solution disposed within the device
- [A ] is the nominal surface area of the negative electrode
- [A + ] is the nominal surface area of the positive electrode
- n is 1 when the negative electrode is the higher surface area electrode, or n is -1 when the positive electrode is the higher surface area electrode;
- e is the permittivity constant
- d is the distance between the surface adsorbed ions and the opposite charged electrode in an electrical double layer
- C sd is the total self-discharge capacity of the high surface area electrode
- f is a normalizing factor
- E is the overall electric potential of the electrochemical cell.
- Equations 1, 5 and 6 also depend on thermodynamic parameters, such as pressure and temperature.
- Equations 1, 5 and 6 can be extracted and calculated according to the suitable equation, when the other variables are known. For example, if a desired pH of a given aqueous solution at a given volume is to be achieved by operating the device of the invention at a given potential, then the differential between the surface areas of the positive and negative electrodes needed to achieve the desired pH can be calculated. In another example, if a desired pH of a given solution is to be achieved by operating a device according to the present invention at a given potential having a specific surface areas differential between the positive and negative electrodes, then the volume of the solution needed to be introduced into the device in order to achieve the desired pH can be calculated.
- the device of the invention requires solely one electrode (i.e., the low surface area electrode) to be resistive to electrolysis reactions.
- the low surface area electrode may be made of, or include, graphite sheets, carbon cloth, carbon paper, or titanium metallic sponge.
- the high surface area electrode relatively inexpensive materials such as activated carbon may advantageously be utilized.
- the cell membrane used in prior art processes is obviated. Thus, the manufacture and/or maintenance cost of the device of the invention can be reduced relatively to the electrochemical cell described in the prior art.
- the electrochemical device of the invention may utilize a graphite electrode as the low surface area electrode, and an activated carbon sheet, or a graphite sheet coated with activated carbon, as the high surface area electrode.
- Operating the device according to the invention comprises applying a current between the positive and negative electrodes in order to electrolyze the aqueous solution disposed within the device until the desired pH of the solution is achieved.
- V is the volume of the aqueous solution disposed within the device
- I is the electric current applied between the electrodes.
- Equation 7 is the time interval for applying said electric current. It should be noted that the variables in Equation 7 also depend on thermodynamic parameters, such as pressure and temperature.
- Equation 7 a higher current (as given by Equation 7) can be applied between the electrodes in the device of the invention, so that the desired pH is achieved more rapidly.
- a lower current can be applied for a longer period of time (as given by Equation 7) in order to reach the desired pH of the solution, and thus extending the useful lifetime of the electrode and protecting it from damages which may occur through overuse.
- the high surface area electrode can be easily regenerated by stripping off its accumulated charge.
- the regeneration of the high surface area electrode is continuous even during operation of the electrolysis device by using a high surface area electrode that is surface-treated, such that the electrode is continuously self-discharged.
- treating the surface of the electrode comprises grounding the electrode.
- treating the surface of the electrode comprises addition of oxide functional groups to the surface of the electrode.
- oxide functional groups to the surface of the high surface electrode provides a counter charge to that of the polarized electrode, so that said polarized electrode exhibits enhanced self-discharge due to faradaic and electrostatic interactions, without any external intervention.
- oxide functional groups and “oxygen-containing functional groups”, as used interchangeably herein, refer to alcohols, ethers, aldehydes, ketones, and carboxylic acids, as well as to a variety of derivatives of the carboxylic acids, such as amides, esters, and acid halides.
- oxide functional groups are carboxyl, lactone, lactol, phenol, ketone, carbonyl, and quinone groups.
- surface-treated high surface area electrode refers to a high surface area electrode that is grounded and/or comprises oxide functional groups.
- the value of C sd when the electrode is not self-discharged, the value of C sd is 0 (zero). However, when a surface-treated electrode is used in the device, the value of C sd is different than 0 (zero) and the total charge capacity gained by the enhanced selfdischarge (C sd ) of said electrode, both in steady state and under application of a current density, is significantly improved and may strive to infinity.
- the present invention provides a method of operation of an asymmetric electrochemical cell device comprising the following steps:
- step (d) applying the electric current calculated in step (b) between the electrodes, until the desired pH of the resulting solution is obtained.
- An illustrative overall electric potential of the electrochemical cell is externally applied between 40-50 mV/(cm 2 of the geometric area of the low surface area electrode) by a power supply, and an illustrative current applied between the electrodes has a magnitude of up to 10 mA/(cm 2 of the geometric area of the low surface area electrode).
- the "geometric" area i.e., the area that is observed by a naked eye
- the pH of a solution can be usefully changed in a very broad range by operating the device according to the invention.
- the desired pH of the aqueous solution is within the range of 4-6, while in another specific embodiment of the invention, the desired pH of the aqueous solution is at least 10.
- the desired pH is dependent on the intended use, as will be easily apparent to the skilled person.
- the device of the invention may be operated in two stages such that, in a first stage, the high surface area electrode operating in a capacitive mode is negatively charged, while the low surface area electrode operation in a faradic mode is positively charges, and in a second stage, the polarity is reversed, such that the high surface area electrode is now positively charged and the low surface area electrode is now negatively charged.
- the first stage provides an acidic pH
- the second stage produces alkaline electrolyzed water, and of course operation can be conducted vice versa.
- the method of operation of the asymmetric electrochemical cell device of the invention may also comprise the steps of:
- the high surface area electrode can be regenerated after the operation of the device is complete, by drying it after rinsing out the concentrated solution with water, e.g., tap water (to avoid fouling reactions).
- water e.g., tap water (to avoid fouling reactions).
- the adsorbed counter ions are released, thereby reducing the electric charge on the surface of the electrode.
- the C sd of the high surface electrode is 0 (zero)
- the regeneration of the high surface area electrode is continuous even during operation of the device by using a surface-treated electrode as the high surface area electrode, such that the electrode is continuously self-discharged. Therefore, the C sd of the high surface electrode is different from 0 (zero).
- the surface-treated electrode may be a grounded electrode or an electrode comprising oxide functional groups on its surface, as described hereinabove.
- the surface-treated electrode can also be regenerated by rinsing the electrode with water and drying it, as described above.
- the present invention provides an electrochemical method for producing hypohalous acid (HOX) in an aqueous solution using an asymmetric electrochemical cell device operated by steps (a)-(d) as described hereinbefore.
- HOX hypohalous acid
- the aqueous solution contains:
- halogen anions (X ) corresponding to the hypohalous acid
- said device comprises a negative electrode and a positive electrode immersed in the aqueous solution.
- the negative electrode has a higher surface area than the positive electrode, at a differential obtained by Equation 1 or Equation 6, such that applying the electric current of step (b), according to the method of operation of the asymmetric electrochemical cell device, between the positive and negative electrodes results in:
- hypohalous acid is formed from halogen anions through a set of faradaic reactions at the positive electrode, followed by a disproportionation reaction of the hypohalous acid.
- the solution containing hypohalous acid has a slightly acidic pH within the range of 4-6, which favors maintaining a high concentration of the hypohalous acid in the solution.
- a slightly acidic pH within the range of 4-6, which favors maintaining a high concentration of the hypohalous acid in the solution.
- more than 90% of the halogen in the solution is in the form of hypohalous acid instead of in the form of hypohalite or halogen such as I z, Br 2 , Cl 2 or F 2 .
- Fig. 3 is a schematic illustration of an asymmetric, typically single-compartment electrochemical cell 300 for producing an acidic water discharge 306, according to one embodiment of the invention.
- the asymmetric electrochemical cell 300 includes a cell housing 301 adapted to contain at least one positive electrode 302 and at least one negative electrode 303 having a higher surface area than the positive electrode 302.
- the differential between the surface areas of the positive and negative electrodes can be obtained by Equation 1 or Equation 6.
- An electrical circuit is formed when the positive electrode 302 and negative electrode 303 are immersed within water or aqueous solution disposed within the cell housing 301 and electrically connected to a suitable power supply 304.
- the feed or operating solution 305 introduced to the asymmetric electrochemical cell 300 contains an alkali halide solute, typically Na + or K + , and chloride (Cl ).
- the asymmetric electrochemical cell 300 may advantageously be used to produce electrolyzed water having an acidic pH.
- the present invention provides a method for controlling the pH of a solution containing a chloride derivative, comprising applying a current to a device for generating an aqueous solution having a desired pH of the invention, as described hereinabove, until the desired pH is obtained.
- the hypohalous acid produced by the asymmetric electrochemical cell device 300 is hypochlorous acid (HOCI).
- the method for producing a hypochlorous acid solution comprises asymmetrically electrolyzing and aqueous solution comprising NaCI (salt water, aqueous NaCI) under the correct conditions as determined by Equations 1, 5 and 6.
- the resulting hypochlorous acid solution can be used as a disinfectant due to the bactericidal (anti-microbial) activity of hypochlorous acid.
- H 2 0 and NaCI are electrolyzed to liberate 0 2 and Cl 2 at the positive electrode, Cl 2 being a reactant in the disproportionation reaction of hypochlorous acid which can subsequently occur.
- the high surface area of the negative electrode adsorbs Na + ions with little or no formation of hydroxide ions (OH ). Therefore, due to the asymmetry of the device of the invention, the resulting solution has an acidic pH. However, the pH of the resulting solution may affect the concentration of hypochlorous acid in the solution. A very low pH (/.e., pH ⁇ 4) drives the disproportionation reaction of hypochlorous acid, namely Cl 2 + H 2 0 HCI + HOCI, to the left, thereby leading to a reduction in hypochlorous acid concentrations and the formation of dissolved chlorine gas, which can damage the components of the device (such as the electrodes in the device) by corrosion.
- hypochlorous acid namely Cl 2 + H 2 0 HCI + HOCI
- the operation of the device of the invention should be stabilized when the pH of the solution is only slightly acidic, namely having a pH value within the range of 4-6.
- WO 2017/064577 teaches to use a hypochlorous acid solution having a pH in the range of 2-4 as an effective disinfectant solution.
- this range is less effective that the 4-6 pH range according to the present invention.
- stabilizing the device of the present invention at a slightly acidic pH of 4-6 prevents the formation of corrosive chlorine gas, and thereby prolongs the useful life of the device and reduces maintenance costs.
- WO 2017/064577 also teaches to operate the asymmetric electrochemical cell apparatus by applying two currents between the electrodes so that the amount of hypochlorous acid is replenished. It has been found that, according to the present invention, a single current is conveniently applied between the positive and negative electrodes, which is sufficient for producing an effective hypochlorous acid solution.
- Fig. 4 is an equilibrium plot of available chlorine present as hypochlorous acid (HOCI), as a function of pH.
- HOCI hypochlorous acid
- the concentration of hypochlorous acid is the highest (more than 90%) and most stable when the pH is within a range of 4 to 5.5.
- pH 2 only about 70% of the chlorine in the system exists as hypochlorous acid, with the remaining 30% existing as active chlorine. It is thus evident that HOCI is not stable in acidic media, and it is more effectively used in a slightly acidic pH at a range of 4-6.
- NaOCI sodium hypochlorite
- the concentration of salt needed for obtaining a desired concentration of hypochlorous acid (C HO ci) is determined by Equation 8, as follows:
- C NaCi is the required salt concentration in the solution disposed within the device, in
- pH is the desired pH of the solution; a is 1 when pH ⁇ 7, or a is -1 when pH>7;
- V is the volume of the solution disposed within the device (Liter);
- C H oci is the desired concentration of the active material needed for a given application, which, of course, will vary for different uses (Molar) ;
- t is the operating time of the device (sec).
- the aqueous NaCI may consist of tap water, which contains at least 150 ppm alkali halide solute.
- water containing 0-150 ppm alkali halide solute e.g ., distilled water or deionized water
- alkali halide salt such as table salt (NaCI).
- a pre-prepared solution of the alkali halide may be introduced.
- the alkali halide may be introduced to device of the invention in the form of a tablet or capsule, or in the form of a powder.
- detergents, odorants, and other functional materials may be incorporated into the consumable salt.
- Fig. 5 is a schematic illustration of an asymmetric, single-compartment electrochemical cell 500 for producing an alkaline water discharge 506.
- the asymmetric electrochemical cell 500 includes a cell housing 501, at least one positive electrode 502 and at least one negative electrode 503, the positive electrode 502 has a higher surface area than the negative electrode 503 by a differential calculated by Equation 5 or Equation 6.
- the positive electrode 502 and negative electrode 503, which are immersed within water or aqueous solution disposed within the cell housing 501 are and electrically connected to a suitable power supply 504, an electrical circuit is formed.
- the feed or operating solution 505 introduced to the asymmetric electrochemical cell 500 contains an alkali halide solute, typically Na + or K + , and chloride (Cl ).
- the asymmetric electrochemical cell 500 may advantageously be used to produce electrolyzed water having an alkaline pH, for example, a pH value of at least 10. Electrolyzed water at such an elevated pH is particularly efficacious in removing chemical materials that are sensitive to high pH, for instance in degreasing applications and in removing pesticides from goods and produce.
- H 2 0 and NaCI are electrolyzed to liberate H 2 and OH at the negative electrode.
- the high surface area of the positive electrode adsorbs Cl ions with little or no formation of hydrogen ions (H + ).
- Fig. 6A is a schematic, transparent side view of an electrochemical device or sprayer 600 manufactured according to the present invention, that may include a vessel or bottle 601 (corresponding to cell housing 301 and 501 of Figs. 3 and 4, respectively), and a spray head 602 connected to an immersion tube 603.
- Spray head 602 may be attached or secured to bottle 601 in various ways, typically by a threaded element 604 that screws on to a threaded neck (not shown) of bottle 601.
- Within bottle 601 are disposed at least one high surface area electrode 605 and at least one low surface area electrode 606.
- Electrodes 605 and 606 may be arranged as sheets, typically substantially parallel sheets, disposed in a vertical orientation with respect to the side of bottle 601. Such an exemplary arrangement is shown in the cross-sectional representation of bottle 601, provided in Fig. 6B.
- the electronics or electronics unit 607 of inventive electrochemical device or sprayer 600 may be housed in a separate compartment 608 at the bottom of bottle 601, fluidly sealed from a liquid-containing volume 609 of bottle 601.
- a schematic exemplary electrical diagram of the electronics 607 of electrochemical device or sprayer 600 is provided in Fig. 6C.
- a power source 610 which is typically disposed externally to sprayer 600, may connect to the electronics 607 of sprayer 600 via a power source port 611, e.g., a universal serial bus (USB) connection.
- the electronics 607 typically include an internal power supply 612, which in some embodiments, is electrically connected to an on-board battery 613 via a battery housing.
- the internal power supply 612 may be responsive to a processing unit, such as central processing unit (CPU) 614, which is typically equipped with an internal memory, but alternatively or additionally, may communicate with an external memory.
- a processing unit such as central processing unit (CPU) 614, which is typically equipped with an internal memory, but alternatively or additionally, may communicate with an external memory.
- At least one switch 615 electrically connected to electrodes 605 and 606, may be responsive to CPU 614, for example to turn the current to the electrodes on or off. In some embodiments, switch 615 may be manually operated.
- a display 616 may also be responsive to CPU 614.
- display 616 may have a first indicator, e.g., a light-emitting diode (LED) light for indicating that the cell is operating, and a second indicator for indicating that the desired pH has been obtained, such that the solution produced is ready for consumption.
- LED light-emitting diode
- Electrochemical sprayer 600 may be operated as described hereinabove, with reference to the electrochemical cell in general.
- a power source is connected to the device, e.g., via a USB cable.
- a voltage of up to about 5 V, a current of up to about 900 mA, or power of between 1.5-7.5 watts may be applied between the high surface area electrodes and the low surface area electrodes.
- the high surface area electrodes are negatively polarized and electrostatically filled with counter ions (e.g., Na + and/or K + ).
- the low surface area electrodes are positively polarized and create electrochemical interactions with the solution, which result in the production of hypochlorous acid and hydrochloric acid.
- the pH may be determined by, or strongly influenced by, the surface area of the high surface area electrodes with respect to the low surface area electrodes (or more precisely, the electrochemical capacitance of the high surface area electrodes with respect to the electrochemical capacitance of the low surface area electrodes), the solution volume, and the cumulative charge applied.
- the cell can be constrained to produce the hypohalous acid around a particular or predetermined desired pH.
- the on-board CPU may be adapted to control the display (e.g., to activate the green light) after calculating the cumulative charge consumption.
- the CPU may be advantageously adapted to count the cumulative charge delivered between the electrodes over the time period of the operative mode (AQ), for example, using Equation 9, as follows:
- F is the Faraday constant
- V is the volume of the solution.
- the CPU may be advantageously further adapted to control the magnitude of the current according to the volume of the solution, such that the voltage does not exceed an undesired or otherwise predetermined value.
- Electrochemical towelette 700 which includes at least one asymmetric electrochemical cell, may have at least one high surface area "counter" electrode 702 and at least one low surface area "working" electrode 703, separated by an insulating layer or sheet 704. Electrodes 702 and 703 may be arranged as parallel sheets. High surface area electrode 702 may be made of, or include, activated carbon ( e.g ., carbon cloth).
- Low surface area electrode 703 may be made of, or include, graphite sheets, carbon cloth, carbon paper, or titanium metallic sponge. Electrodes 702 and 703 may have tabs or protrusions 702A, 703A that facilitate electrical connection to a power supply such as a battery (not shown). Working electrode 703 may be wrapped or covered by a cloth 701, so as to avoid mechanical abrasion on working electrode 702.
- a commercial carbon cloth (El-Gad, Israel) was used as the low surface area electrode 703, and a carbon cloth, having a specific surface area of about 1500 m 2 /g (Kynol, Japan) was used as the high surface area electrode 702.
- Such carbon cloth materials are made of carbon fibers.
- electrochemical towelette 700 may be submerged in tap water, using the limited amount of NaCI (or other alkali halide) therein (typically at least 150 ppm) to form the necessary reactive reagents.
- NaCI or other alkali halide
- low surface area electrode 703 undergoes faradaic reactions, whereas high surface area electrode 702 adsorbs counter ions by electrostatic interactions in a capacitive mode of operation.
- the pH and the concentration of the hypochlorous acid thus formed can be controlled by changing the appropriate variable according to an appropriate equation selected from Equation 1 and 5-7.
- HOCI may react with organic contaminants present in the water. Some of the products could conceivably be harmful. However, by wetting the towelette through the high surface area carbon side, such organic contaminants may be adsorbed or removed, so as to appreciably reduce any concentration of organic contaminants in the electrolyzed water. Moreover, any amount of organic contaminants produced should be very small, because tap water is used, and this is coupled with the fact that only a very small amount of water per operation is used.
- Fig. 8A provides a schematic, transparent top view of an asymmetric electrochemical container 800, according to an embodiment of the present invention.
- Fig. 8B provides a schematic, transparent side view of said container.
- Electrochemical container 800 comprises a pool compartment 801, generally defined by a pool casing 802, and an electronics unit 803, generally defined by an electronics casing 804, and typically disposed at the side of pool compartment 801. It will be appreciated that the electronics casing 804 may be distinct and fluidly sealed with respect to the liquid contents within pool casing 802. Electrochemical container 800 also contains at least one high surface area electrode 805 and at least one low surface area electrode 806. Electrodes 805 and 806 may be arranged as sheets, typically substantially parallel sheets, disposed in a vertical orientation with respect to the side of the electrochemical container 800.
- Electronics unit 803 of inventive electrochemical container 800 typically includes a CPU and associated memory, at least one switch or switching mechanism, a power supply, a display, and a power source port, and may be substantially identical to the electronics unit 607 provided in Fig. 6C and described hereinabove. In some embodiments, however, a battery may be unnecessary.
- a stirring mechanism 807 may be disposed, which is typically anchored in a bottom surface of pool compartment 801.
- Stirring mechanism 807 which may be adapted to obtain a substantially homogeneous mixture of active product in the aqueous solution within pool compartment 801, may be electrically connected to, and powered by electronics unit 803.
- a casing wall 808 of electronics unit 803, disposed between electronics unit 803 and pool compartment 801, may be used to secure the electronics (e.g., disposed on an electric board) in place, for example, using screws or other securing hardware.
- a casing component such as partition 809 may be used to hold the electrodes in place, and may have ports or holes to facilitate the transport of fluid in the vicinity of the electrodes.
- Electrochemical container 800 may be operated substantially as described hereinabove, particularly with respect to the method of operation of the device of the invention.
- the CPU of electrochemical container 800 may reverse the polarity in the electrochemical device (whenever reversed polarization is desired), for example, by controlling a switching mechanism associated with the electrodes and/or the power supply.
- the inventive electrochemical container 800 may be useful for a two-stage treatment of agriculture produce, wherein the first stage comprises the production of a slightly acidic hypochlorous acid solution at a pH of 4-6 for removing remaining living bacteria from the produce, and the second stage comprises the production of an alkaline solution at a pH of at least 10 for removing residual pesticides from the produce, or vice versa.
- the hypochlorous acid solution produced by the electrochemical device of the present invention may be particularly efficacious in the treatment and disinfection of filters in water flow paths and water treatment devices.
- filters are known to encourage biofilm formation.
- treating the filters with low pH solutions, as described herein, may also appreciably enhance the removal of scale and the like, which, in turn, yet further enhances removal of the biofilm.
- the solution produced by the asymmetric electrochemical cell device according to the invention may be used for treating agriculture produce, such as fruits and vegetables, for both disinfecting remaining living bacteria and removing residual pesticides from the surface of the produce.
- Equation 10 electrochemical capacitance with respect to an electrode
- Cd is the differential electrochemical capacitance (in F);
- dQ is the differential charge (in coulombs); and dE is the differential potential (in Volts) of the electrode with respect to reference electrode.
- equation 10 can be expressed as:
- Cd dQ/(dE*G) (10a) wherein G is the electrodes weight (g) and Cd is the weight normalized differential electrochemical capacitance (in F/g).
- cyclic voltammetry Quantitative measurement of "electrochemical capacitance” is performed by cyclic voltammetry, as is known to those of skill in the art. Briefly, in cyclic voltammetry, the potential of the electrode (with respect to a reference electrode) is linearly scanned (usually starting from the initial immersion potential, which may be denoted as potential of zero charge (PZC) back and forth. The output is the current (vertical axis) versus the potential. Since the scan rate dE/dt (t is time) is constant and the current (I) equals dQ/dt, dividing the current values from the vertical axis by the scan rate value provides the differential capacitance (Cd) with respect to the potential (/.e., Cd(E)).
- PZC potential of zero charge
- portable with respect to an electrochemical device or cell, as used herein, refers to a device or cell that can be freely carried, or freely moved around, by a user, while functioning in an operative, electrochemical mode using an on-board or other cordless power supply.
- the experimental surface area of the negative electrode (being the high surface area electrode) in the set of experiments was 500, 1000 and 1500 m 2 .
- Table 2 Theoretical surface area of the negative electrode depending on pH The ratio between the theoretical surface area and the experimental surface area of the negative electrode determined for each experiment is shown is Table 3.
- the values of the variables in the equation were as follows:
- V (volume of the aqueous solution) 2 Liter
- n 1 when the negative electrode is the higher surface area electrode
- C sd total self-discharge capacity
- the values of the variables in the equation were as follows:
- V (volume of the aqueous solution) 2 Liter
- [A ] (nominal surface area of the negative electrode) 0.01 m 2 /gr;
- n is -1 when the positive electrode is the higher surface area electrode
- C sd total self-discharge capacity
- the resulting pH of the solution is approximately 10.
- Equation 3 can be simplified by changing the time scale to a logarithmic scale, as shown in Fig. 9B.
- the summation of the C sd can be plotted by two type of slopes, which are dependent on time.
- Fig. 10 plots hypochlorous anion (OCF) concentration in ppm as a function of the charge/discharge cycle number (#) under constant current, applied to an electrochemical towelette containing a 1M solution of NaCI.
- OCF hypochlorous anion
- Fig. 11 is a plot of acidic pH development in the electrochemical towelette as a function of time (charge/discharge cycle number).
- the power source was controlled by the on-board CPU to apply a potential of 5 Volts. Under these illustrative and non-limitative operating conditions, the system stabilizes around pH 3, but of course higher or lower pHs can be achieved using the appropriate conditions.
- Fig. 12 is a plot of the pH development in the electrochemical towelette, as a function of the total charge consumption (in milliampere hour units, mAh), according to an embodiment of the present invention.
- the power source was controlled by the on-board CPU to apply a potential of 5 Volts. Under these illustrative and non-limitative operating conditions, the system stabilizes around pH 2, but of course higher or lower pHs can be achieved using the appropriate conditions.
- Fig. 13 is a plot of the pH development in a rectangular, 8x16 cm electrochemical towelette at the low surface area side as a function of time.
- a current was applied for the first 340 seconds. Then, the application of the potential was ceased.
- the power source was controlled by the onboard CPU to apply a potential of 5 Volts.
- the pH of the towelette surface was monitored using a surface pH meter (Orion). After about 150 seconds from the application of the potential, the acidity upon the surface of the towelette had dropped to a pH of around 3. After ceasing the application of the potential, the pH remained quite steady (around 2.1) during the remaining 3 minutes of the run.
- the charging can also be stopped at a higher pH, e.g., 5.5, which is suitable for application to the human skin, or at any other desired pH.
- Fig. 14 is a plot of potential vs. time for an electrochemical towelette, according to an embodiment of the present invention.
- the potential measured with respect to a reference electrode, is extremely steady at about 4 Volts, for multiple cycles with total duration in excess of 15 hours.
- Fig. 15 is a plot of the pH development in the towelette (high surface area side) as a function of time, using the identical time scale of Fig. 13.
- the power source was controlled by the on-board CPU to apply a potential of 5 Volts. No major changes in the pH were observed, apparently because the main process transpiring was the adsorption of cations.
- Fig. 16 is a plot of the pH development in the electrochemical towelette surface as a function of time, during the production of an alkaline solution, according to an embodiment of the present invention.
- the power source was controlled by the on-board CPU to apply a potential of 5 Volts.
- By negative polarization of the electrochemical towelette (or similarly, with the electrochemical sprayer) high pH values may be attained.
- a rectangular towelette of 8x16 cm in size was used.
- a potential difference of -5 Volts was applied to the towelette, and the pH of the towelette surface was monitored using a surface pH meter (Orion). It may be observed that a highly basic (pH> 11) environment on the surface of the towelette was attained after about 5 minutes.
- the anti-microbial efficacy of the inventive electrochemical towelettes having absorbed hypohalous solution was tested on colonies of Escherichia coli and Staphylococcus aureus. The colonies were grown to a concentration of about 10,000 microbes/ml on Petri plates. Mini electrochemical towelette pads (1.5 c 1.5 cm) were produced for this purpose. The pads were soaked in tap water (containing at least 150 ppm of sodium chloride solute) and were precharged to 5 Volts for 3 minutes. The pads were then placed on top of the respective bacteria colonies, in the middle of each Petri dish, for another 3 minutes of charge under 5 Volts.
- Figs. 17A and 17B are photographs of Escherichia coli and Staphylococcus aureus colonies, respectively, grown in Petri dishes.
- the central region of the colonies treated with non-polarized pads no void regions were observed, indicating that the polarization of the tap water soaked in the pads was the cause behind the bactericidal effect of the electrochemical towelettes.
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Abstract
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| Application Number | Priority Date | Filing Date | Title |
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| IL257589A IL257589A (en) | 2018-02-18 | 2018-02-18 | Method and device for electrochemical control of the acidity level (pH) |
| PCT/IL2019/050193 WO2019159181A1 (en) | 2018-02-18 | 2019-02-18 | Method and apparatus for electrochemical ph control |
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| EP3752464A4 EP3752464A4 (en) | 2021-11-03 |
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| EP (1) | EP3752464A4 (en) |
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| US20240271290A1 (en) * | 2020-08-24 | 2024-08-15 | Bar-Ilan University | Method and apparatus for hydrogen production by electrolysis |
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| JP3308345B2 (en) * | 1992-08-21 | 2002-07-29 | ユニチカ株式会社 | How to operate the electrolytic cell |
| JPH1076271A (en) * | 1996-07-10 | 1998-03-24 | Yoshiya Okazaki | Operation method for maintaining ph of hypochlorous acid sterilizing water generator and hypochlorous acid concentration and hypochlorous acid sterilizing water generator equipped with control means for implementing method |
| JP3984992B2 (en) * | 2004-12-22 | 2007-10-03 | エア・ウォーター株式会社 | Solution pH control method and apparatus |
| JP5129442B2 (en) * | 2005-02-08 | 2013-01-30 | エア・ウォーター株式会社 | Liquid charged substance concentration control device |
| EP1889813B1 (en) * | 2005-06-08 | 2014-09-17 | Tanah Process Ltd. | Method for adjusting ph of liquid and ph adjustor |
| JP4216892B1 (en) * | 2007-04-13 | 2009-01-28 | 優章 荒井 | Electrolyzed water production apparatus, electrolyzed water production method, and electrolyzed water |
| WO2009049025A1 (en) * | 2007-10-10 | 2009-04-16 | Concord Materials Technologies Llc | Device and method for the extraction of metals from liquids |
| KR20100075987A (en) * | 2007-11-02 | 2010-07-05 | 유쇼 아라이 | Combustion system, combustion method, fuel fluid, process for producing the fuel fluid, and apparatus for producing the fuel fluid |
| KR20100064633A (en) * | 2008-12-05 | 2010-06-15 | 삼성전자주식회사 | Electrode for capacitive deionization, and capacitive deionization device and electric double layer capacitor having same |
| US8394253B2 (en) * | 2010-11-16 | 2013-03-12 | Strategic Resource Optimization, Inc. | Electrolytic system and method for generating biocides having an electron deficient carrier fluid and chlorine dioxide |
| EP2829215A4 (en) * | 2012-03-19 | 2015-10-28 | Sharp Kk | Washing device and washing method |
| EP3013203A4 (en) * | 2013-06-27 | 2017-03-22 | Microlin, LLC | Anti-microbial disinfectant wipe and method of use |
| JP6487217B2 (en) * | 2014-02-06 | 2019-03-20 | 有限会社ターナープロセス | Method and apparatus for controlling free chlorine concentration, and sterilization method and sterilization apparatus using them |
| CN104628092A (en) * | 2015-02-26 | 2015-05-20 | 罗民雄 | Membrane-free electrolysis water new method capable of controlling acidity or alkalinity of electrolysis water |
| US11111160B2 (en) * | 2015-08-25 | 2021-09-07 | Bar-Ilan University | Asymmetric electrochemical cell apparatus, and operating methods thereof |
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| US20200399148A1 (en) | 2020-12-24 |
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| IL257589A (en) | 2018-04-30 |
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